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now I have datetime like mintt

In [134]: mintt
Out[134]: datetime.datetime(2012, 5, 9, 23, 21, 10, 548382, tzinfo=<matplotlib.dates._UTC object at 0x2f805d0>)    

and I change it like this:

In [131]: mintt.isoformat(" ").split(".")[0]
Out[131]: '2012-05-09 23:21:10'

how can I delete the minute and seconds,let it become "2012-05-09 23:00:00" ?

PS:at the beginning I use method below:

In [135]: mintt.strftime('%Y-%m-%d %H:00:00')
Out[135]: '2012-05-09 23:00:00'

but it will raise an exception like' year=1601 is before 1900; the datetime strftime() methods require year >= 1900'

so I use isoformat method

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3 Answers 3

up vote 4 down vote accepted

Use the datetime.replace() method.

>>> import datetime
>>> t = datetime.datetime(2012, 5, 9, 23, 21, 10, 548382)
>>> t.replace(minute=0, second=0, microsecond=0).isoformat(' ')
'2012-05-09 23:00:00'

This doesn't change t, it creates a new object.

>>> t
datetime.datetime(2012, 5, 9, 23, 21, 10, 548382) # still has same value
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may be since the version reason,I get what I want by below codes:In [145]: mintt.replace(minute=0,second=0).isoformat(' ').split(".")[0]Out[145]: '2012-05-09 23:00:00' thank you for helping me solve the basic problem:) –  wuwucat Dec 11 '12 at 17:12
    
@orokusaki: Reread PEP-8 naming conventions. –  Dietrich Epp Dec 11 '12 at 17:23
    
@DietrichEpp - pardon me, I meant "Pylint", which doesn't really matter in the context of an SO answer. –  orokusaki Dec 11 '12 at 17:55

you could subtract the seconds and minutes from your original time...

nominsec = mintt - datetime.timedelta(minutes=mintt.minute, seconds=mintt.second)
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to be honest, I like Dietrich's solution better –  Cameron Sparr Dec 12 '12 at 20:41

If its a datetime object, maybe this?:

>>> dt = datetime.datetime.strptime('2012-05-09 23:00:00','%Y-%m-%d %H:%M:%S')
>>> dt
datetime.datetime(2012, 5, 9, 23, 0)
>>> "{} {}:00:00".format(dt.date(),dt.hour)
'2012-05-09 23:00:00'
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